Kashikar Ravi, DeTellem Derick, Ghosh Partha Sarathi, Xu Yixuan, Ma Shengqian, Witanachchi Sarath, Phan Manh-Huong, Lisenkov Sergey, Ponomareva Inna
Department of Physics, University of South Florida, Tampa, Florida 33620, United States.
Glass & Advanced Materials Division, Bhabha Atomic Research Centre, Mumbai 400 085, India.
J Am Chem Soc. 2024 May 15;146(19):13105-13112. doi: 10.1021/jacs.3c14744. Epub 2024 May 1.
Hybrid organic-inorganic perovskites are famous for the diversity of their chemical compositions, phases, phase transitions, and associated physical properties. We use a combination of experimental and computational techniques to reveal a strong coupling between structure, magnetism, and spin splitting in a representative of the largest family of hybrid organic-inorganic perovskites: the formates. With the help of first-principles simulations, we find spin splitting in both conduction and valence bands of [NHNH]Co(HCOO) induced by spin-orbit interactions, which can reach up to 14 meV. Our magnetic measurements reveal that this material exhibits canted antiferromagnetism below 15.5 K. The direction of the associated antiferromagnetic order parameter is strongly coupled with spin splitting in the centrosymmetric phase, allowing for the creation and annihilation of spin splitting through the application of a magnetic field. Furthermore, the structural phase transition to the experimentally observed polar 2 phase completely changes the aforementioned spin splitting and its coupling to magnetic degrees of freedom. This reveals that in [NHNH]Co(HCOO), the structure and magnetism are strongly coupled to spin splitting and can be manipulated through electric and magnetic fields. We believe that our findings offer an important step toward a fundamental understanding and practical applications of materials with coupled properties.
有机-无机杂化钙钛矿以其化学成分、相、相变以及相关物理性质的多样性而闻名。我们结合实验和计算技术,揭示了最大的有机-无机杂化钙钛矿家族的一个代表——甲酸盐中结构、磁性和自旋分裂之间的强耦合。借助第一性原理模拟,我们发现自旋轨道相互作用在[NHNH]Co(HCOO)的导带和价带中均引起自旋分裂,其值可达14毫电子伏特。我们的磁性测量表明,这种材料在15.5 K以下表现出倾斜反铁磁性。相关反铁磁序参量的方向在中心对称相中与自旋分裂强烈耦合,这使得通过施加磁场能够产生和消除自旋分裂。此外,向实验观测到的极性2相的结构相变完全改变了上述自旋分裂及其与磁自由度的耦合。这表明在[NHNH]Co(HCOO)中,结构和磁性与自旋分裂强烈耦合,并且可以通过电场和磁场进行调控。我们相信,我们的发现朝着深入理解具有耦合性质的材料并实现其实际应用迈出了重要一步。